USPatentGranted
B2

Display device having crack-sensing line

Granted 11 Jun 2019 · 4 office actions

Current assignee: Samsung Display · originally Samsung Electronics

Law firm: Law firm · Log in to unlock

Attorney: Attorney · Log in to unlock

Inventors: Su Yeon Yun, Ji Won Sohn, Sun Park · Examiner: Caridad Everhart · AU 2895 · TC 2800

Life of the patent

11 dated events
⤢ drag to zoom20182020202220242026202820302032203420362038ProsecutionOwnershipTerm & fees
ProsecutionOwnershipTerm & feeshover for detail · click to open

Abstract

A display device includes a substrate, an insulating layer, and a crack-sensing line. The substrate includes a display area having a plurality of pixels to display images, and a non-display area surrounding the display area. The insulating layer is disposed in the non-display area and includes a recess. The crack-sensing line is disposed in and extends along the recess, and electrically connected to at least one of the pixels. The recess is disposed at a surface or inside of the insulating layer, and extends along the non-display area.

Description

13 parts
›CROSS-REFERENCE TO RELATED APPLICATION

This application claims priority from and the benefit of Korean Patent Application No. 10-2016-0125107 filed on Sep. 28, 2016, which is hereby incorporated by reference for all purposes as if fully set forth herein.

BACKGROUND
›Field

The invention relates generally to display devices, and more particularly, to a display device that senses cracks in the display device and/or is resistant to cracking.

Discussion of the Background

When cracks are generated in the manufacturing process of a display device, moisture may be permeated into the display area of the display device. The moisture that is permeated due to the cracks may cause defects in the display device. Therefore, when cracks can be prevented from being generated in the display device or when the generated cracks can be sensed, it is possible to reduce defects in the display device.

The above information disclosed in this Background section is only for enhancement of understanding of the background of the inventive concepts, and, therefore, it may contain information that does not form the prior art that is already known in this country to a person of ordinary skill in the art.

›SUMMARY

Display devices constructed according to the principles of the invention include a crack-sensing line capable of improving product yield by sensing cracks generated in the display device and/or preventing the display device from being designated as a defective device when only minute cracks are present that have substantially no influence on quality of the display device, and/or improving resistance against cracks by preventing propagation of the cracks generated in the display device.

Additional aspects will be set forth in the detailed description which follows, and, in part, will be apparent from the disclosure, or may be learned by practice of the inventive concepts.

According to one aspect of the invention, a display device includes a substrate including a display area having a plurality of pixels to display images, and a non-display area surrounding the display area; an insulating layer disposed in the non-display area and including a recess; and a crack-sensing line disposed in and extending along the recess, and electrically connected to at least one of the pixels, and wherein the recess is disposed at a surface or inside of the insulating layer, and extends along the non-display area.

The recess may have a quadrangular cross-sectional shape.

The recess may include a polygonal or curved protrusion.

The crack-sensing line may have a polygonal recess portion corresponding to the polygonal protrusion or a curved recess portion corresponding to the curved protrusion.

The display device may further include first lines and second lines. The pixels may be arranged in a matrix having row direction and a column direction, the first lines may be connected to first pixels arranged in the row direction, the second lines may be connected to second pixels arranged in the column direction, and the crack-sensing line may be electrically connected to at least one of the first pixels and the second pixels.

Each of the pixels may include one or more thin film transistors, each thin film transistor may include a gate electrode as a control terminal, a source electrode as an input terminal, an active layer as a channel unit, and a drain electrode as an output terminal, and the crack-sensing line may include the same material as that of at least one of the gate electrode, the source electrode, and the drain electrode.

The display device may further include a plurality of gate lines and a plurality of data lines intersecting each other, wherein the crack-sensing line is connected to at least one of the gate lines and the data lines.

The insulating layer may extend into the display area, at least one of the gate electrode, the source electrode, and the drain electrode may be disposed in an electrode recess positioned in the insulating layer, and the electrode recess may be positioned at a surface or inside of the insulating layer, and is positioned in the display area.

The display device may further include at least one protection line disposed adjacent to the crack-sensing line, wherein the protection line is disposed in a protection line recess positioned in the insulating layer.

The protection line recess may be positioned at a surface or inside of the insulating layer, and extends along the recess in the non-display area, and the protection line may extend along the recess.

The protection line may extend substantially parallel to the crack-sensing line.

Each of the pixels may include one or more thin film transistors, each thin film transistor may include a gate electrode as a control terminal, a source electrode as an input terminal, an active layer as a channel unit, and a drain electrode as an output terminal, and the protection line may include the same material as that of at least one of the gate electrode, the source electrode, and the drain electrode.

The at least one protection line may be electrically isolated.

The display device may further include at least one dam adjacent to the crack-sensing line, wherein the dam is disposed at a surface or inside of the insulating layer.

The dam may extend substantially parallel to the crack-sensing line.

Each of the pixels may include one or more thin film transistors, each thin film transistor may include a gate electrode as a control terminal, a source electrode as an input terminal, an active layer as a channel unit, and a drain electrode as an output terminal, and the dam may include the same material as that of at least one of the gate electrode, the source electrode, and the drain electrode.

The dam may include a plurality of dams disposed at opposite sides of the crack-sensing line.

The crack-sensing line may include a plurality of crack-sensing lines, and the at least one dam is disposed between the crack-sensing lines.

The at least one dam may be electrically isolated.

The recess may include a trench having a ditch-like shape.

Accordingly, exemplary embodiments of the invention provide a display device capable of improving product yield by sensing cracks generated in the display device and preventing the display device from being designated as a defective device by the presence of only minute cracks that have substantially no influence on quality of the display device, and improving resistance against cracks by preventing propagation of the cracks generated in the display device.

The foregoing general description and the following detailed description are exemplary and explanatory and are intended to provide further explanation of the claimed subject matter.

›BRIEF DESCRIPTION OF THE DRAWINGS

The accompanying drawings, which are included to provide a further understanding of the inventive concepts, and are incorporated in and constitute a part of this specification, illustrate exemplary embodiments of the inventive concepts, and, together with the description, serve to explain principles of the inventive concepts.

FIG. 1 is a top plan view of a first embodiment of a display device constructed according to of the principles of the invention.

FIG. 2 is a cross-sectional view of the display device of FIG. 1 illustrating crack-sensing lines disposed in trenches in a second insulating layer.

FIG. 3 illustrates a circuit diagram of the display device of FIG. 1 illustrating the electrical connections between crack-sensing lines, gates and pixels.

FIG. 4 is an enlarged view of area A of FIG. 2 illustrating one embodiment of a crack-sensing line of the invention.

FIG. 5 is a waveform diagram illustrating exemplary signals generated by the circuit diagram of the display device of FIG. 3 .

FIG. 6 is an enlarged view of area A of FIG. 2 illustrating a second embodiment of a crack-sensing line of the invention.

FIG. 7 is an enlarged view of area A of FIG. 2 illustrating a third embodiment of a crack-sensing line of the invention.

FIG. 8 is a cross-sectional view of a second embodiment of a display device of the invention illustrating crack-sensing lines disposed in trenches of a first insulating layer.

FIG. 9 is a cross-sectional view of a third embodiment of a display device of the invention illustrated crack sensing lines dispose outside an encapsulation part.

FIG. 10 is a top plan view schematically illustrating a third embodiment of a display device the invention illustrating dummy lines to prevent cracks from propagating in the device.

FIG. 11 is a cross-sectional view taken along lines X-X′ of FIG. 10 .

FIG. 12 is a top plan view schematically illustrating a fourth embodiment of a display device of the invention illustrating dams to prevent cracks from propagating in the device.

FIG. 13 is a cross-sectional view taken along lines XII-XII′ of FIG. 12 .

›DETAILED DESCRIPTION OF THE ILLUSTRATED EMBODIMENTS · 1 of 8

In the following description, for the purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding of various exemplary embodiments. It is apparent, however, that various exemplary embodiments may be practiced without these specific details or with one or more equivalent arrangements. In other instances, well-known structures and devices are shown in block diagram form in order to avoid unnecessarily obscuring various exemplary embodiments.

In the accompanying figures, the size and relative sizes of layers, films, panels, regions, etc., may be exaggerated for clarity and descriptive purposes. Also, like reference numerals denote like elements.

When an element or layer is referred to as being “on,” “connected to,” or “coupled to” another element or layer, it may be directly on, connected to, or coupled to the other element or layer or intervening elements or layers may be present. When, however, an element or layer is referred to as being “directly on,” “directly connected to,” or “directly coupled to” another element or layer, there are no intervening elements or layers present. For the purposes of this disclosure, “at least one of X, Y, and Z” and “at least one selected from the group consisting of X, Y, and Z” may be construed as X only, Y only, Z only, or any combination of two or more of X, Y, and Z, such as, for instance, XYZ, XYY, YZ, and ZZ. Like numbers refer to like elements throughout. As used herein, the term “and/or” includes any and all combinations of one or more of the associated listed items.

Although the terms first, second, etc. may be used herein to describe various elements, components, regions, layers, and/or sections, these elements, components, regions, layers, and/or sections should not be limited by these terms. These terms are used to distinguish one element, component, region, layer, and/or section from another element, component, region, layer, and/or section. Thus, a first element, component, region, layer, and/or section discussed below could be termed a second element, component, region, layer, and/or section without departing from the teachings of the present disclosure.

Spatially relative terms, such as “beneath,” “below,” “lower,” “above,” “upper,” and the like, may be used herein for descriptive purposes, and, thereby, to describe one element or feature's relationship to another element(s) or feature(s) as illustrated in the drawings. Spatially relative terms are intended to encompass different orientations of an apparatus in use, operation, and/or manufacture in addition to the orientation depicted in the drawings. For example, if the apparatus in the drawings is turned over, elements described as “below” or “beneath” other elements or features would then be oriented “above” the other elements or features. Thus, the exemplary term “below” can encompass both an orientation of above and below. Furthermore, the apparatus may be otherwise oriented (e.g., rotated 90 degrees or at other orientations), and, as such, the spatially relative descriptors used herein interpreted accordingly.

The terminology used herein is for the purpose of describing particular embodiments and is not intended to be limiting. As used herein, the singular forms, “a,” “an,” and “the” are intended to include the plural forms as well, unless the context clearly indicates otherwise. Moreover, the terms “comprises,” “comprising,” “includes,” and/or “including,” when used in this specification, specify the presence of stated features, integers, steps, operations, elements, components, and/or groups thereof, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and/or groups thereof.

Various exemplary embodiments are described herein with reference to sectional illustrations that are schematic illustrations of idealized exemplary embodiments and/or intermediate structures. As such, variations from the shapes of the illustrations as a result, for example, of manufacturing techniques and/or tolerances, are to be expected. Thus, exemplary embodiments disclosed herein should not be construed as limited to the particular illustrated shapes of regions, but are to include deviations in shapes that result from, for instance, manufacturing. For example, an implanted region illustrated as a rectangle will, typically, have rounded or curved features and/or a gradient of implant concentration at its edges rather than a binary change from implanted to non-implanted region. Likewise, a buried region formed by implantation may result in some implantation in the region between the buried region and the surface through which the implantation takes place. Thus, the regions illustrated in the drawings are schematic in nature and their shapes are not intended to illustrate the actual shape of a region of a device and are not intended to be limiting.

Unless otherwise defined, all terms (including technical and scientific terms) used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this disclosure is a part. Terms, such as those defined in commonly used dictionaries, should be interpreted as having a meaning that is consistent with their meaning in the context of the relevant art and will not be interpreted in an idealized or overly formal sense, unless expressly so defined herein.

A display device according to one or more exemplary embodiments of the invention will now be described with reference to FIG. 1 to FIG. 4 .

FIG. 1 is a top plan view of a first embodiment of a display device constructed according to the principles of the invention. FIG. 2 is a cross-sectional view of the display device of FIG. 1 illustrating crack-sensing lines disposed in trenches in a second insulating layer. FIG. 3 illustrates a circuit diagram of the display device of FIG. 1 illustrating the electrical connections between crack-sensing lines, gates and pixels. FIG. 4 is an enlarged view of area A of FIG. 2 illustrating one embodiment of a crack-sensing line of the invention. Specifically, FIG. 2 illustrates a cross-section of a portion of one pixel PX in the display area DA of the display device at which the thin film transistor TFT is disposed and a cross-section obtained by cutting a portion of the non-display area NDA, through which the crack-sensing lines CD 1 and CD 2 extend, along a direction that is perpendicular to the longitudinal axes of the crack-sensing lines CD 1 and CD 2 .

›DETAILED DESCRIPTION OF THE ILLUSTRATED EMBODIMENTS · 2 of 8

First, referring to FIG. 1 , the display device includes a display area DA for displaying images, and a non-display area NDA disposed around the display area DA. In FIG. 1 , it is illustrated that the non-display area NDA is positioned to surround four sides of the display area DA. However, exemplary embodiments are not limited thereto and, the non-display area NDA may be positioned outside one or more of sides of the display area DA. For example, the non-display area NDA may be positioned around some of the edges of the display area DA.

The display area DA includes a plurality of pixels PX. The pixels PX, each of which is a minimum unit for displaying an image, may include a first pixel R, a second pixel G, and a third pixel B that respectively display red, green, and blue. Pixels PX disposed at one column may display the same color, and columns of pixels which display different colors may be alternately disposed. However, the positioning of the pixels PX of the display device is not limited thereto. The pixels PX may display different colors in additional to the red, green, and blue.

The exemplary structure of each pixel PX will be described with reference to FIG. 2 and FIG. 3 . One pixel PX includes at least one thin film transistor TFT disposed on a substrate SUB.

The substrate SUB may be an insulating substrate including glass, polymer, stainless steel, or other materials known in the art.

The substrate SUB may be flexible, stretchable, foldable, bendable, or rollable. For example, the substrate SUB may serve as a flexible film including a resin such as polyimide.

The thin film transistor TFT includes an active layer AL, a gate electrode GE, a source electrode SE, and a drain electrode DE. The gate electrode GE may be connected to a gate line (not illustrated), and the source electrode SE may be connected to a data line D. The gate line may be intersect the data line D and extend in a first direction DR 1 , and the data line D may extend in a third direction DR 3 that intersects the first direction DR 1 .

The active layer AL may be formed of polysilicon or an oxide semiconductor. The active layer AL includes a channel area that is not doped with impurities, and a source area and a drain area that are disposed on opposite sides of the channel area and doped with impurities.

The gate electrode GE is disposed on the active layer AL, with a first insulating layer IL 1 disposed therebetween. The source electrode SE and the drain electrode DE are disposed on a second insulating layer IL 2 , which covers the gate electrode GE, and are respectively connected to a source region and a drain region of the active layer AL through contact holes formed in the first insulating layer IL 1 and the second insulating layer IL 2 . The drain electrode DE is connected to a first electrode E 1 of the organic light emitting diode OLED through a contact hole formed in the third insulating layer IL 3 . In FIG. 2 , the gate electrode GE is positioned above the active layer AL, however, the gate electrode may be positioned below the active layer. In one or more exemplary embodiments, at least one of the gate electrode GE, the source electrode SE, and the drain electrode DE may include a metal such as aluminum (Al), silver (Ag), copper (Cu), molybdenum (Mo), chromium (Cr), tantalum (Ta), and titanium (Ti), or a conductive material including at least one of alloys of these metals, and may be formed in a single-layer or a multilayer structure.

The first insulating layer IL 1 , the second insulating layer IL 2 , and the third insulating layer IL 3 may be disposed in the display area DA and the non-display area NDA. In one or more exemplary embodiments, at least one of the first insulating layer IL 1 , the second insulating layer IL 2 , and the third insulating layer IL 3 may include an organic insulating material or an inorganic insulating material such as a silicon oxide (SiO x ), a silicon nitride (SiN x ), a silicon oxynitride (SiON), a silicon oxyfluoride (SiOF), and an aluminum oxide (AlO x ), and may be formed in a single-layer or a multilayer structure.

The organic light emitting diode OLED includes a first electrode E 1 connected to the drain electrode DE of the thin film transistor TFT, an organic emission layer EL disposed on the first electrode E 1 , and a second electrode E 2 disposed on the organic emission layer EL. A pixel definition layer IL 4 which defines a region at which the organic emission layer EL is to be formed may be disposed on the first electrode E 1 , and the organic emission layer EL may be disposed in an opening of the pixel definition layer IL 4 .

The first electrode E 1 may be an anode which serves as a hole injection electrode, and the second electrode E 2 may be a cathode which serves as an electron injection electrode. Alternatively, the first electrode E 1 may be a cathode which serves as an electron injection electrode, and the second electrode E 2 may be an anode which serves as a hole injection electrode.

The organic emission layer EL may be disposed between the first electrode E 1 and the second electrode E 2 , and may be made of a low molecular weight organic material or a high molecular weight organic material, such as PEDOT (poly(3,4-ethylenedioxythiophene)) or the like. The organic emission layer EL may include one of a red organic emission layer for emitting red light, a green organic emission layer for emitting green light, and a blue organic emission layer for emitting blue light. The red organic emission layer, the green organic emission layer, and the blue organic emission layer are respectively formed on red, green, and blue pixels to implement a color image.

An encapsulation part EN may be disposed on the substrate SUB throughout the display area DA and the non-display area NDA of the substrate SUB. The encapsulation part EN encapsulates the display device by covering the substrate SUB with the organic light emitting diode OLED disposed therebetween. The encapsulation part EN serves to protect the organic light emitting diode OLED. The encapsulation part EN may include an organic layer OL and an inorganic layer IL disposed on the organic layer OL. The encapsulation part EN may be formed as a thin film encapsulation part. In one or more exemplary embodiments, the encapsulation part EN may include at least one organic layer and at least one inorganic layer which are alternately stacked. Specifically, a plurality of inorganic layers and a plurality of organic layers may be provided, and may be mutually alternately stacked. For example, the encapsulation part EN may have at least one sandwich structure in which at least one organic layer is inserted between at least two inorganic layers.

›DETAILED DESCRIPTION OF THE ILLUSTRATED EMBODIMENTS · 3 of 8

The non-display area NDA will be described with reference to FIG. 3 and FIG. 4 as well as FIG. 1 . A plurality of signal lines are connected to the pixels PX. At least some of the signal lines are disposed in the non-display area NDA of the substrate.

The signal lines disposed in the non-display area NDA may include a first test gate line TEST_GATE, a second test gate line DC_GATE, a first test signal line TEST_DATA 1 , a plurality of second test signal lines DC_R, DC_G, and DC_B, a first crack-sensing line CD 1 , and a second crack-sensing line CD 2 .

Control terminals of first switching elements Q 1 disposed in the non-display area NDA may be connected to the first test gate line TEST_GATE, and input terminals thereof may be connected to the first test signal line TEST_DATA 1 . Output terminals of the first switching elements Q 1 may be connected to a plurality of data lines D each connected to the thin film transistor TFT of each of the pixels PX.

Control terminals of second switching elements Q 2 may be connected to the second test gate line DC_GATE, and input terminals thereof may be connected to the second test signal lines DC_R, DC_G, and DC_B. Output terminals of the second switching elements Q 2 may be connected to the data lines D. A first pixel R of the pixels PX may be connected to the second test signal line DC_R through one of the second switching elements Q 2 . A second pixel G thereof may be connected to the second test signal line DC_G through one of the second switching elements Q 2 , and a third pixel B thereof may be connected to the second test signal line DC_B through one of the second switching elements Q 2 .

The first crack-sensing line CD 1 and the second crack-sensing line CD 2 may be disposed in non-display areas NDA and positioned at opposite sides of the display area DA.

The first crack-sensing line CD 1 is connected to at least one of the data lines D through the first connector CP 1 a and the second connector CP 1 b . The data line D connected to the first crack-sensing line CD 1 may be connected to the second test signal line DC_G. A first end of the first crack-sensing line CD 1 may be connected to the input terminal of the second switching element Q 2 through the second connector CP 1 b.

The first crack-sensing line CD 1 may be connected to the second connector CP 1 b by extending from the first connector CP 1 a in a first direction DR 1 at a left side of the non-display area NDA, changing the direction via an end loop, and extending in a second direction R 2 that is opposite to the first direction DR 1 . As a result, the first crack-sensing line CD 1 may be disposed around the left side of the non-display area NDA.

Similarly, the second crack-sensing line CD 2 is connected to at least one of the data lines D through a third connector CP 2 a and a fourth connector CP 2 b . The data line D connected to the second crack-sensing line CD 2 may be connected to the second test signal line DC_G. A first end of the second crack-sensing line CD 2 may be connected to the input terminal of the second switching element Q 2 through the fourth connector CP 2 b.

The second crack-sensing line CD 2 may be connected to the fourth connector CP 2 b by extending from the third connector CP 2 a in the first direction DR 1 at a right side of the non-display area NDA, changing the direction via an end loop, and extending in the second direction R 2 that is opposite to the first direction DR 1 . As a result, the second crack-sensing line CD 2 may be disposed around the right side of the non-display area NDA.

The first crack-sensing line CD 1 and the second crack-sensing line CD 2 thus may be formed to have a substantially looped shape by extending in the first direction DR 1 and returning in the second direction R 2 that is opposite to the first direction DR 1 with the display area DA interposed therebetween. In addition, the shapes of the first crack-sensing line CD 1 and the second crack-sensing line CD 2 may be the same, as shown or different.

Referring to FIG. 2 and FIG. 4 , the first crack-sensing line CD 1 may be buried in a first trench TR disposed in the second insulating layer IL 2 . The first trench TR has a cross section defined by a width and a depth corresponding to the cross sectional shape of the first crack-sensing line CD 1 . The first trench TR may be formed to have an elongated ditch-like shape with a narrow width defined by two side walls, one bottom surface, and an open top. A cross-section obtained by cutting the first trench TR along a plane formed by the first direction DR 1 and the second direction DR 2 may have a quadrangular shape. The first trench TR may be formed to have a substantially looped shape by extending in the first direction DR 1 at the left side of the non-display area NDA and returning in the second direction R 2 that is opposite to the first direction DR 1 . The first crack-sensing line CD 1 is buried in the first trench TR, and thus the shapes of the first crack-sensing line CD 1 and the first trench TR may substantially correspond to each other. The first crack-sensing line CD 1 may be formed to fit in the first trench TR. However, the width and area of the first crack-sensing line CD 1 may be smaller than those of the first trench TR. The first crack-sensing line CD 1 may include the same material as that of the source electrode SE or the drain electrode DE, and may be disposed at or in the same layer as that of the source electrode SE or the drain electrode DE.

The first trench TR may be formed when contact holes for connecting the source electrode SE and the drain electrode DE to the active layer AL are formed after the second insulating layer IL 2 is stacked. In addition, the first crack-sensing line CD 1 may be formed by using the same material as that of the source electrode SE and the drain electrode DE when they are formed.

The second crack-sensing line CD 2 may be buried in a second trench (not illustrated in FIG. 4 ) disposed in the second insulating layer IL 2 . The second trench may be disposed in the second insulating layer IL 2 to have an area and a depth corresponding to those of the second crack-sensing line CD 2 . The second trench may be formed to have a substantially looped shape by extending in the first direction DR 1 at the right side of the non-display area NDA and returning in the second direction R 2 that is opposite to the first direction DR 1 . The second crack-sensing line CD 2 is buried in the second trench, and thus the shapes of the second crack-sensing line CD 2 and the second trench may substantially correspond to each other. The second crack-sensing line CD 2 may include the same material as that of the source electrode SE or the drain electrode DE, and may be disposed at or in the same layer as that of the source electrode SE or the drain electrode DE.

›DETAILED DESCRIPTION OF THE ILLUSTRATED EMBODIMENTS · 4 of 8

The second trench may be formed when the first trench TR and the contact holes for connecting the source electrode SE and the drain electrode DE to the active layer AL are formed after the second insulating layer IL 2 is stacked. In addition, the second crack-sensing line CD 2 may be formed by using the same material as that of the source electrode SE, the drain electrode DE, and the first crack-sensing line CD 1 when they are formed.

Hereinabove, the display device according to an exemplary embodiment of the invention has been described, but exemplary embodiments are not limited thereto and may have numerous modifications in accordance with the broad principles of the invention. For example, first ends of the first crack-sensing line CD 1 and the second crack-sensing line CD 2 may be connected to the output terminal of the second switching element Q 2 . Moreover, the data line D connected to the first crack-sensing line CD 1 and the second crack-sensing line CD 2 may be connected to the second test signal line DC_R or the second test signal line DC_B instead of the second test signal line DC_G. Also, the first crack-sensing line CD 1 and the second crack-sensing line CD 2 may be respectively connected to data lines connected to different signal lines. For example, each of the first crack-sensing line CD 1 and the second crack-sensing line CD 2 may be connected to one of the first test gate line TEST_GATE and the second test gate line DC_GATE.

In addition, the design of the crack-sensing lines CD 1 and CD 2 is not limited to the exemplary illustrations. For example, the crack-sensing lines CD 1 and CD 2 may be disposed to loop back and forth in the non-display area NDA many times, may be disposed in a zigzag shape, or may be disposed such that one crack-sensing line extends in the non-display area NDA to surround the display area DA. As the crack-sensing lines CD 1 and CD 2 are more densely disposed in the non-display area NDA, it is possible to sense cracks in a wide area without missing areas that may contain cracks. Any positioning of the crack-sensing lines CD 1 and CD 2 capable of sensing the cracks may be used without being limited to a specific shape. In addition, one or more crack-sensing lines may be used.

In the aforementioned exemplary embodiments, an example in which the invention is applied to a organic light emitting diode display has been described. However, the exemplary embodiments may be applied to various types of display devices including a liquid crystal display. When the exemplary embodiments are applied to the liquid crystal display, a liquid crystal layer may be included instead of the organic emission layer EL, and a backlight unit may be further included.

Hereinafter, an exemplary operation and an effect of a display device according to the principle of the invention will be described with reference to FIG. 2 to FIG. 5 .

FIG. 5 is a waveform diagram illustrating exemplary signals generated by the circuit diagram of the display device of FIG. 3 .

Referring to FIGS. 3 and 5 , when a gate-on signal is applied to the first test gate line TEST_GATE for a first time period H 1 , the first switching elements Q 1 connected to the data lines D are turned on to apply a first signal V 1 , from the first test signal line TEST_DATA 1 , to the data lines D. The first signal V 1 may serve as a signal to drive the pixels PX to display white, and the pixels PX may display white when the first signal V 1 is applied to the data lines D.

When the gate-on signal is applied to the second test gate line DC_GATE for a second time period H 2 after a gate-off signal is applied to the first test gate line TEST_GATE, the second switching elements Q 2 connected to the data lines D are turned on to apply a second signal V 2 , from the second test signal lines DC_R, DC_G, and DC_B, to the data lines D. The second signal V 2 may serve as a signal to drive the pixels PX to display black, and the pixels PX may display black by applying the second signal V 2 to the data lines D.

In this case, assume cracks are generated in the non-display area NDA positioned at an edge of the display area DA due to an external impact applied to the display device, and the first crack-sensing line CD 1 and the second crack-sensing line CD 2 may be damaged. Accordingly, resistance of the data lines D connected to the first crack-sensing line CD 1 and the second crack-sensing line CD 2 is increased, and thus a voltage V_T applied to the pixels connected to the first crack-sensing line CD 1 and the second crack-sensing line CD 2 may not be charged to the second signal V 2 within a given time duration, thereby generating a voltage difference ΔV with the second signal V 2 . As the voltage difference ΔV is generated, the pixels connected to the first crack-sensing line CD 1 and the second crack-sensing line CD 2 may not display black, and may display relative brightness. Thus, the cracks which may have been generated in the non-display area NDA adjacent to the edge of the display area DA can be sensed through such a bright line.

According to the principles of the invention, the first crack-sensing line CD 1 and the second crack-sensing line CD 2 are buried in trenches of an insulating layer, and thus are more resistant to cracking as compared with crack-sensing lines disposed on the insulating layer to be exposed. Accordingly, the crack-sensing lines CD 1 and CD 2 may not be damaged by minute cracks that do not substantially affect quality of the display device, and such cracks may not be sensed through the test lines and pixels connected to the crack-sensing lines CD 1 and CD 2 . Thus, a display device with minute cracks may not be determined to be defective, as the case in which significant cracks are generated in the device. As a result, the display device may be prevented from being designated as a defective device even though minute cracks causing substantially no effect on the quality of the display device are generated in the non-display area NDA.

›DETAILED DESCRIPTION OF THE ILLUSTRATED EMBODIMENTS · 5 of 8

In addition, since the crack-sensing lines CD 1 and CD 2 that are not damaged by the minute cracks are disposed in a reciprocating or looped form along the non-display area NDA, even when minute cracks are generated, the generated cracks are prevented from being transferred by the crack-sensing lines CD 1 and CD 2 . Accordingly, it is possible to substantially prevent the cracks from being propagated in the display area DA.

In contrast, when cracks are generated such that the crack-sensing lines CD 1 and CD 2 are damaged, the cracks can be sensed through the pixels connected to the crack-sensing lines CD 1 and CD 2 .

As such, the crack-sensing lines CD 1 and CD 2 are not affected by minute cracks but are affected by cracks causing an influence on product quality. Accordingly, it is possible to sense crack causing errors while preventing unnecessary crack sensing of minute or insignificant cracking.

Hereinafter, other embodiments of crack-sensing lines constructed according to the principles of the invention will be described with reference to FIGS. 6 and 7 . A description related to the same components and configurations as those of the aforementioned exemplary embodiment is unnecessary and will be omitted to avoid redundancy.

FIG. 6 is an enlarged view of area A of FIG. 2 illustrating a second embodiment of a crack-sensing line of the invention.

The first crack-sensing line CD 1 may be buried in the first trench TR′ disposed in the second insulating layer IL 2 . The first trench TR′ may further include a quadrangular protrusion QP. The first trench TR′ may be formed to have two side walls and one bottom surface, and the quadrangular protrusion QP that projects in the second direction DR 2 may extend upwardly from the bottom surface. A cross-section obtained by cutting the quadrangular protrusion QP along a plane formed by the first direction DR 1 and the second direction DR 2 may have a quadrangular shape.

The shape of the first crack-sensing line CD 1 ′ may correspond to the shape of the first trench TR′. In the first crack-sensing line CD 1 ′, a quadrangular recess portion QD that is recessed in the second direction DR 2 may be positioned at the region corresponding to the quadrangular protrusion QP. The shapes of the first crack-sensing line CD 1 ′ and the first trench TR′ may correspond to each other.

Although not illustrated, the second crack-sensing line may be buried in the second trench including the quadrangular protrusion of the second insulating layer IL 2 , similar to the first crack-sensing line CD 1 ′. Alternatively, the shape of the second crack-sensing line may be different from that of the first crack-sensing line CD 1 ′.

FIG. 7 is an enlarged view of area A of FIG. 2 illustrating a third embodiment of a crack-sensing line of the invention.

The first crack-sensing line CD 1 ″ may be buried in the first trench TR″ disposed in the second insulating layer IL 2 . The first trench TR may further include a triangular protrusion TP. The first trench TR″ may be formed to have two side walls and one bottom surface, and the triangular protrusion TP that projects in the second direction DR 2 may extend upwardly from the bottom surface. A cross-section obtained by cutting the triangular protrusion TP along a plane formed by the first direction DR 1 and the second direction DR 2 may have a triangular shape.

The shape of the first crack-sensing line CD 1 ″ may correspond to the shape of the first trench TR″. In the first crack-sensing line CD 1 ″, a triangular recess portion TD that is recessed in the second direction DR 2 may be positioned at the region corresponding to the triangular protrusion TP. The shapes of the first crack-sensing line CD 1 ″ and the first trench TR″ may correspond to each other.

Although not illustrated, the second crack-sensing line may be buried in the second trench including the triangular protrusion of the second insulating layer IL 2 , similar to the first crack-sensing line CD 1 ″. Alternatively, the second crack-sensing line may be buried in the second trench including a quadrangular protrusion of the second insulating layer IL 2 , and the shape of the second crack-sensing line may be different from that of the first crack-sensing line CD 1 ″. In addition, the protrusion is not limited to a triangular shape. For example, a polygonal protrusion or a curved protrusion may be provided. In this case, the crack-sensing line may also have a mating polygonal or curved recess portion corresponding to the polygonal or curved protrusion.

Hereinafter, additional, exemplary embodiments of display devices constructed according to the principles of the invention will be described with reference to FIGS. 8 and 9 . A description related to the same components and configurations as those of the aforementioned exemplary embodiments are unnecessary and will be omitted to avoid redundancy.

FIG. 8 is a cross-sectional view of a second embodiment of a display device of the invention illustrating crack-sensing lines disposed in trenches of a first insulating layer.

The first crack-sensing line CD 1 may be buried in the first trench TR disposed in the first insulating layer IL 1 . The first trench TR having a width and a depth that correspond to those of the first crack-sensing line CD 1 may be disposed in the first insulating layer IL 1 . The first trench TR may be formed to have an elongated, ditch-like shape with a narrow width and have two side walls and one bottom surface. A cross-section obtained by cutting the first trench TR along a plane formed by the first direction DR 1 and the second direction DR 2 may have a quadrangular shape.

The first crack-sensing line CD 1 is buried in the first trench TR. The shapes of the first crack-sensing line CD 1 and the first trench TR may substantially correspond to each other. The first crack-sensing line CD 1 may include a same material as that of the gate electrode GE.

The first trench TR may be formed by patterning the stacked first insulating layer IL 1 . Thereafter, the first crack-sensing line CD 1 may be formed together with the gate electrode GE by using the same material as that of the gate electrode GE.

›DETAILED DESCRIPTION OF THE ILLUSTRATED EMBODIMENTS · 6 of 8

Similarly, the crack-sensing line CD 2 may be buried in a second trench (not illustrated in FIG. 8 ) disposed in the first insulating layer IL 1 , and may further include the same material as that of the gate electrode GE.

However, exemplary embodiments are not limited to the illustrated structures. For example, the first trench TR or the second trench disposed in the first insulating layer IL 1 may include a quadrangular or triangular protrusion at the bottom surface thereof, and the first crack-sensing line CD 1 or the second crack-sensing line may include a quadrangular or triangular recess portion at the region corresponding to the quadrangular or triangular protrusion. Alternatively, the shapes of the first crack-sensing line CD 1 and the second crack-sensing line may be different from each other. The first crack-sensing line CD 1 may be buried in the first insulating layer IL 1 , and the second crack-sensing line may be buried in the second insulating layer IL 2 .

FIG. 9 is a cross-sectional view of a third embodiment of a display device of the invention illustrated crack sensing lines dispose outside an encapsulation part.

The first crack-sensing line CD 1 of the non-display area NDA may be buried in the second insulating layer IL 2 without being overlapped with the encapsulation part EN. In other words, the crack sensing lines may be disposed in the second insulating later outside the encapsulation part. The gate electrode GE disposed in the display area DA may be buried in the first insulating layer IL 1 , and the source electrode SE or the drain electrode DE may be buried in the second insulating layer IL 2 .

The gate electrode GE buried in the first insulating layer IL 1 may be formed by stacking the first insulating layer IL 1 , patterning an electrode trench for burying the gate electrode GE, and forming the gate electrode material in the electrode trench. Next, the second insulating layer IL 2 is stacked, the first trench TR and electrode trenches for connecting the source electrode SE and the drain electrode DE to the active layer AL may be patterned, and the first crack-sensing line CD 1 , the source electrode SE, and the drain electrode DE may be formed to be buried in the second insulating layer IL 2 .

However, exemplary embodiments are not limited to these structures. For example, at least one of the gate electrode GE, the source electrode SE, and the drain electrode DE may be buried in the insulating layer. For example, the first crack-sensing line CD 1 and the gate electrode GE may be buried in the first insulating layer IL 1 , and the source electrode SE and the drain electrode DE may be buried in the second insulating layer IL 2 . In this case, the first trench TR may be disposed in the first insulating layer IL 1 and include a quadrangular or triangular protrusion at the bottom surface thereof, and the first crack-sensing line CD 1 may include a quadrangular or triangular recess portion at the region corresponding to the quadrangular or triangular protrusion.

Hereinafter, a further exemplary embodiment of the invention will be described with reference to FIG. 10 and FIG. 11 . A description related to the same components and configurations as those of the aforementioned exemplary embodiments are unnecessary and will be omitted to avoid redundancy.

FIG. 10 is a top plan view schematically illustrating a third embodiment of a display device of the invention illustrating dummy lines to prevent cracks from propagating in the device. FIG. 11 is a cross-sectional view taken along lines X-X′ of FIG. 10 . Particularly, X-X′ portion in FIG. 11 shows a cross-section taken along the line X-X′ of FIG. 10 .

Protection lines may be disposed at opposite sides of first crack-sensing lines CD 1 or between the first crack-sensing lines CD 1 to help prevent propagation of cracks. The protection lines may not be electrically connected to other components of the display device and/or may not be connected to each other. A first protection line PCD 1 may be disposed at a left side of the first crack-sensing lines CD 1 , a second protection line PCD 2 may be disposed between the first crack-sensing lines CD 1 , and a third protection line PCD 3 may be disposed at a right side of the first crack-sensing lines CD 1 . The first crack-sensing lines CD 1 partially overlap the encapsulation part EN.

The first protection line PCD 1 , the second protection line PCD 2 , and the third protection line PCD 3 may be disposed along the first crack-sensing lines CD 1 to surround a left edge of the display area DA. Each of the first protection line PCD 1 , the second protection line PCD 2 , and the third protection line PCD 3 may be parallel to the first crack-sensing lines CD 1 . The first protection line PCD 1 , the second protection line PCD 2 , or the third protection line PCD 3 may include the same material as that of the first crack-sensing lines CD 1 , the source electrode SE, or the drain electrode DE.

The first protection line PCD 1 , the second protection line PCD 2 , and the third protection line PCD 3 may be respectively buried in first protection line trenches PTR 1 , PTR 2 , and PTR 3 disposed in the second insulating layer IL 2 . Specifically, the first protection line PCD 1 may be buried in the first protection line trench PTR 1 , the second protection line PCD 2 may be buried in the first protection line trench PTR 2 , and the third protection line PCD 3 may be buried in the first protection line trench PTR 3 . The first protection line trench PTR 1 having an area and a depth corresponding to the first protection line PCD 1 , the first protection line trench PTR 2 having an area and a depth corresponding to the second protection line PCD 2 , and the first protection line trench PTR 3 having an area and a depth corresponding to the third protection line PCD 3 may be disposed in the second insulating layer IL 2 .

Each of the first protection line trenches PTR 1 , PTR 2 , and PTR 3 may be formed to have an elongated, ditch-like shape with a narrow width and have two side walls and one bottom surface. Cross-sections obtained by cutting the first protection line trenches PTR 1 , PTR 2 , and PTR 3 along a plane formed by the first direction DR 1 and the second direction DR 2 may respectively have quadrangular shapes. The first protection line trenches PTR 1 , PTR 2 , and PTR 3 may be disposed along the first trench TR to surround a left half of the non-display area NDA. The first protection line trenches PTR 1 , PTR 2 , and PTR 3 may be parallel to the first trench TR. Shapes of the first protection line PCD 1 and the first protection line trench PTR 1 may correspond to each other, shapes of the second protection line PCD 2 and the first protection line trench PTR 2 may correspond to each other, and shapes of the third protection line PCD 3 and the first protection line trench PTR 3 may correspond to each other.

›DETAILED DESCRIPTION OF THE ILLUSTRATED EMBODIMENTS · 7 of 8

The first protection line trenches PTR 1 , PTR 2 , and PTR 3 may be formed together when the first trench TR and contact holes for connecting the source electrode SE and the drain electrode DE to the active layer AL after the second insulating layer IL 2 is stacked. In addition, the first protection line PCD 1 , the second protection line PCD 2 , or the third protection line PCD 3 may be formed by using a same material as those of the source electrode SE, the drain electrode DE, and the first crack-sensing lines CD 1 when they are formed.

Protection lines may be disposed at opposite sides of second crack-sensing lines CD 2 , or between the second crack-sensing lines CD 2 . A fourth protection line PCD 4 may be disposed at a left side of the second crack-sensing lines CD 2 , a fifth protection line PCD 5 may be disposed between the second crack-sensing lines CD 2 , and a sixth protection line PCD 6 may be disposed at a right side of the second crack-sensing lines CD 2 . The fourth protection line PCD 4 , the fifth protection line PCD 5 , and the sixth protection line PCD 6 may be disposed along the second crack-sensing lines CD 2 to surround a right edge of the display area DA. Each of the fourth protection line PCD 4 , the fifth protection line PCD 5 , and the sixth protection line PCD 6 may be parallel to the second crack-sensing lines CD 2 . The fourth protection line PCD 4 , the fifth protection line PCD 5 , or the sixth protection line PCD 6 may include a same material as that of the second crack-sensing lines CD 2 , the source electrode SE, or the drain electrode DE.

Second protection line trenches (not illustrated in FIG. 11 ) corresponding to the fourth protection line PCD 4 , the fifth protection line PCD 5 , and the sixth protection line PCD 6 may be disposed in the second insulating layer IL 2 . The fourth protection line PCD 4 , the fifth protection line PCD 5 , and the sixth protection line PCD 6 may be buried in the second protection line trenches disposed in the second insulating layer IL 2 .

Each of the second protection line trenches may be formed to have an elongated, ditch-like shape with a narrow width and have two side walls and one bottom surface. A cross-section obtained by cutting each of the second protection line trenches along a plane formed by the first direction DR 1 and the second direction DR 2 may have a quadrangular shape. The second protection line trenches may be disposed along the second trench (not illustrated) to surround the right edge of the display area DA. The second protection line trenches may be parallel to the second trench.

The second protection line trenches may be formed together when the first trench TR and contact holes for connecting the source electrode SE and the drain electrode DE to the active layer AL after the second insulating layer IL 2 is stacked. In addition, the fourth protection line PCD 4 , the fifth protection line PCD 5 , and the sixth protection line PCD 6 may be formed by using a same material as those of the source electrode SE, the drain electrode DE, and the second crack-sensing lines CD 2 when they are formed. The first protection line trenches PTR 1 , PTR 2 , and PTR 3 and the second protection line trenches may be symmetrical to each other, but they are not necessarily symmetrical to each other.

In FIG. 10 , one first protection line PCD 1 is illustrated, but the first protection line PCD 1 may have disconnected portions, that is, may have a plurality of protection lines. Similarly, each of the second protection line PCD 2 , the third protection line PCD 3 , the fourth protection line PCD 4 , the fifth protection line PCD 5 , and the sixth protection line PCD 6 may have disconnected portions, that is, may have a plurality of protection lines. One or more of the first protection line PCD 1 , the second protection line PCD 2 , the third protection line PCD 3 , the fourth protection line PCD 4 , the fifth protection line PCD 5 , and the sixth protection line PCD 6 may be omitted, and each of the first protection line PCD 1 , the second protection line PCD 2 , the third protection line PCD 3 , the fourth protection line PCD 4 , the fifth protection line PCD 5 , and the sixth protection line PCD 6 may include one or more protection lines. As a result, the display device may include one or more protection lines, and the number of the protection lines may be greater than six. Further, each of the first protection line trenches PTR 1 , PTR 2 , and PTR 3 or the second protection line trenches may include a quadrangular or triangular protrusion at the bottom surface thereof, and each of the protection lines may include a quadrangular or triangular recess portion at the region corresponding to the quadrangular or triangular protrusion. Further, one or more protection lines may be buried in the first insulating layer IL 1 . In this case, the protection lines may be formed together by using the same material as that of the gate electrode GE. The design of the protection lines may be changed depending on the design of the crack-sensing lines such that the protection lines are substantially parallel to the crack-sensing lines.

The protection lines are buried in trenches of the insulating layer, and thus are more resistant to cracking. Accordingly, the protection lines may serve to prevent the cracks generated in the display device from propagating to the display area DA. As a result, it is possible to provide a display device that is more resistant against cracking.

Hereinafter, a further exemplary embodiment of the invention will be described with reference to FIG. 12 and FIG. 13 . A description related to the same components and configurations as those of the aforementioned exemplary embodiments are unnecessary and will be omitted to avoid redundancy.

FIG. 12 is a top plan view schematically illustrating a fourth embodiment of a display device of the invention illustrating dams to prevent cracks from propagating in the device. FIG. 13 is a cross-sectional view taken along lines XII-XII′ of FIG. 12 . Particularly, XII-XII′ portion in FIG. 13 shows a cross-section taken along the line XII-XII′ of FIG. 12 .

›DETAILED DESCRIPTION OF THE ILLUSTRATED EMBODIMENTS · 8 of 8

Dams may be disposed at opposite sides of first crack-sensing lines CD 1 or between the first crack-sensing lines CD 1 to help prevent propagation of cracks. The dams may not be electrically connected to other components of the display device and/or may not be connected to each other. A first dam DAM 1 may be disposed at a left side of the first crack-sensing lines CD 1 , a second dam DAM 2 may be disposed between the first crack-sensing lines CD 1 , and a third dam DAM 3 may be disposed at a right side of the first crack-sensing lines CD 1 .

The first dam DAM 1 , the second dam DAM 2 , and the third dam DAM 3 may be disposed on the first insulating layer IL 1 .

The first dam DAM 1 , the second dam DAM 2 , and the third dam DAM 3 may be disposed along the first crack-sensing lines CD 1 to surround a left edge of the display area DA. Each of the first dam DAM 1 , the second dam DAM 2 , and the third dam DAM 3 may be parallel to the first crack-sensing lines CD 1 . The first dam DAM 1 , the second dam DAM 2 , or the third dam DAM 3 may include a same material as that of the gate electrode GE. For example, the first dam DAM 1 , the second dam DAM 2 , or the third dam DAM 3 may include copper (Cu). The first dam DAM 1 , the second dam DAM 2 , or the third dam DAM 3 may be formed by using a same material as that of the gate electrode GE together when it is formed.

Similarly, dams may be disposed at opposite sides of the second crack-sensing lines CD 2 or between the second crack-sensing lines CD 2 . A fourth dam DAM 4 may be disposed at a left side of the second crack-sensing lines CD 2 , a fifth dam DAMS may be disposed between the second crack-sensing lines CD 2 , and a sixth dam DAM 6 may be disposed at a right side of the second crack-sensing lines CD 2 . The fourth dam DAM 4 , the fifth dam DAMS, and the sixth dam DAM 6 may be disposed on the first insulating layer IL 1 .

The fourth dam DAM 4 , the fifth dam DAMS, and the sixth dam DAM 6 may be disposed along the second crack-sensing lines CD 2 to surround a right edge of the display area DA. Each of the fourth dam DAM 4 , the fifth dam DAMS, and the sixth dam DAM 6 may be parallel to the first crack-sensing lines CD 2 . The fourth dam DAM 4 , the fifth dam DAMS, or the sixth dam DAM 6 DAM 3 may include a same material as that of the gate electrode GE, such as copper (Cu). The fourth dam DAM 4 , the fifth dam DAMS, or the sixth dam DAM 6 may be formed by using the same material as that of the gate electrode GE together when it is formed.

Although FIG. 13 illustrates an example in which the dams are disposed on the first insulating layer IL 1 , one or more of the dams may be disposed on the second insulating layer IL 2 . In this case, the dams may be formed by using the same material as that of the source electrode SE or the drain electrode DE. Further, although gaps are formed between the dams in FIG. 13 , one dam may be formed without gaps. One or more of the first dam DAM 1 , the second dam DAM 2 , the third dam DAM 3 , the fourth dam DAM 4 , the fifth dam DAMS, and the sixth dam DAM 6 may be omitted, and each of the first dam DAM 1 , the second dam DAM 2 , the third dam DAM 3 , the fourth dam DAM 4 , the fifth dam DAMS, and the sixth dam DAM 6 may be provided without gaps. That is, the display device may include one or more dams, and the number of the dams may be greater than six. The design of the dams may be changed depending on the design of the crack-sensing lines such that the dams are substantially parallel to the crack-sensing lines. In addition, the both dams of FIGS. 12-13 and the protection lines of FIGS. 10-11 may be provided in a display device.

The dams may serve to prevent the cracks generated in the display device from being transferred to the display area DA, and thus it is possible to provide a display device that is stronger against cracks.

Although certain exemplary embodiments and implementations have been described herein, other embodiments and modifications will be apparent from this description. Accordingly, the inventive concepts are not limited to such embodiments, but rather to the broader scope of the presented claims and various obvious modifications and equivalent arrangements.

Claims

20 · 3 independent · depth 4
1234567891011121314151617181920
20 granted claims

Classifications

9 codes
IPC · International Patent Classification
Section G — Physics
  • G02F1/1333
  • G01N27/22
  • G09G3/3208
  • G02F1/13
  • G02F1/1362
  • G02F1/1368
Section H — Electricity
  • H01L27/12
  • H10K99/00
  • H10K59/131

Claim changes

Soon
Coming soonHow the claims changed between publication and grant

See which claims were amended, added or cancelled during examination, with every added and removed word marked.

AmendedAddedCancelledUnchanged

The published claims of this patent are not paired with the granted ones in what we hold.

File wrapper

⤢ drag to zoomJul 2017Oct 2017Jan 2018Apr 2018Jul 2018Oct 2018Jan 2019Apr 2019Jul 2019USPTOApplicantNon-final rejectionResponse after non-finalFinal rejectionResponse after final
USPTOApplicanthover for detail · click to open
Pendency
2.0 y
740 days filing → grant
Office actions
2
non-final + final
Responses
2
no RCE
Examiner
Caridad Everhart
art unit 2895 · TC 2800
Citations: 7 back · 3 forward

See the full prosecution history — every USPTO and applicant action on this file, in order.

Log in to unlock

Chain of title

⤢ drag to zoom20182020202220242026202820302032203420362038Owner 1
Titlehover for detail · click to open

See the full assignment history — every owner this patent has passed through, with recordation dates and reel/frame numbers.

Log in to unlock

Term & fees

See the term timeline — pendency span, in-force span, the maintenance fees paid and both computed expiry dates.

Log in to unlock

Priority chain

1 priority documents
›Priority documents — 1
TypeDocumentDate
related publicationUS 20180090517 A129 Mar 2018

Worldwide family

8 members · 3 offices
US4KR2CN2
this patentIP5 & PCTother officessolid = grantedhover for detail · click to open
Members
8
DOCDB simple family 61685666
Offices
3
US · KR · CN
Granted
4 of 8
grant date present
›IP5 & PCT — 8 members
OfficePublicationKindPublishedFiledStatusTitle
USUS-2018090517-A1A129 Mar 20181 Jun 2017publishedDisplay device having crack-sensing line
USthis patentUS-10319750-B2B211 Jun 20191 Jun 2017grantedDisplay device having crack-sensing line
USUS-2019267407-A1A129 Aug 20199 May 2019publishedDisplay device having crack-sensing line
USUS-10665620-B2B226 May 20209 May 2019grantedDisplay device having crack-sensing line
KRKR-20180035288-AA6 Apr 201828 Sep 2016publishedDisplay device
KRKR-102555323-B1B113 Jul 202328 Sep 2016grantedDisplay device
CNCN-107871764-AA3 Apr 201818 Sep 2017publishedDisplay device with crackle sense wire
CNCN-107871764-BB18 Aug 202318 Sep 2017grantedDisplay device with crack sensing line

Validity challenges

See the validity challenges on record — reexaminations, IPRs and PGRs, with their institution decisions and outcomes.

Log in to unlock

Citations

See every patent this one cites and every patent that cites it back — publication, assignee, and how each one was found.

Log in to unlock